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I have something like this:

<img class="photo" src="www.example.com" />
<img class="photo" src="www.example2.com" />
<img class="photo" src="www.example3.com" />

And i need to get this:

<a href="www.example.com" class="link">
    <img class="photo" src="www.example.com" />
</a>
<a href="www.example2.com" class="link">
    <img class="photo" src="www.example.com2" />
</a>
<a href="www.example3.com" class="link">
    <img class="photo" src="www.example.com3" />
</a>

I need to add the link, the href with the same code as the SRC of each image, and a class.

I was trying to do it like this:

$('.photo').wrapAll('<a>');

But it doesn't even work. What am i doing wrong?

Thanks.

share|improve this question
    
$('.photo').wrapAll('<a />'); ? Or $('.photo').wrapAll('<a></a>');? api.jquery.com/wrapAll –  PeeHaa Mar 28 '12 at 15:43
    
It doesn't work. The images are loaded with jquery with: d_row.append(img); –  Alvaro Mar 28 '12 at 16:53

3 Answers 3

up vote 7 down vote accepted

Because the hrefs will all be different, you'll need to use each.

$('img.photo').each( function() {
    var $img = $(this),
        href = $img.attr('src');
    $img.wrap('<a href="' + href + '" class="link"></a>');
});

Note that wrapAll isn't what you want anyway as it will take all the elements and wrap them with a single anchor tag. If you weren't using an anchor that needs a different href for each element, wrap would work by itself and wrap each one individually.

share|improve this answer
    
Sounds very nice but it seems it doesn't work on my code. It might be because images are not loaded on the website, they are added by javascript one by one with this: d_row.append(img); Any help? Thanks. –  Alvaro Mar 28 '12 at 16:52
    
If you're adding it dynamically, either wrap it before appending it or simply construct the HTML you're appending to include the link before adding it to the DOM. –  tvanfosson Mar 28 '12 at 17:08
    
I have tried it with this code and the rest of replies and no one did anything to the images. It didn't add anything. –  Alvaro Mar 28 '12 at 17:13
    
Ok, now it work. Maybe i was using in the bad place. Thanks!!! –  Alvaro Mar 28 '12 at 17:16

$('img').wrap("<a href='foo'>") will work just fine.

share|improve this answer

Try this:

$('.photo').before('<a href="www.example3.com" class="link">');
$('.photo').after('</a>');

And if you want

$( '.photo' ).each( function() {
    var mySrc = $( this ).attr( "src" );
    $( this ).before( '<a href="' + mySrc + '" class="link">' ) );
    $( this ).after( '</a>' ) );
});

I hope this works for you...

share|improve this answer
    
My images are loaded with javascript after d_row.append(img); So this doesn't work well. –  Alvaro Mar 28 '12 at 16:53

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